Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm fairly new to the concept of JavaScript's prototype concept.

Considering the following code :

var x = function func(){
}

x.prototype.log = function() {
  console.log("1");
}

var b = new x();

As I understand it, b.log() should return 1 since x is its prototype. But why is the property b.prototype undefined?

Isn't b.prototype supposed to return the reference to the x function?

share|improve this question
2  
No, b.prototype is not supposed to be x. That's simply not how prototypes work in JavaScript. Are you thinking of the __proto__ property? stackoverflow.com/q/572897/139010 –  Matt Ball Jan 22 '13 at 2:46

4 Answers 4

up vote 20 down vote accepted

Only constructor functions have prototypes. Since x is a constructor function, x has a prototype.

b is not a constructor function. Hence, it does not have a prototype.

If you want to get a reference to the function that constructed b (in this case, x), you can use

b.constructor
share|improve this answer
    
Thank you! It is exactly the explanation I needed. Straight to the point. –  Pascal Paradis Jan 22 '13 at 11:53
    
Peter, do you have a recommendation as to what book/online resource to read about all of the JS object model? –  Victor Piousbox Mar 28 '14 at 19:15
    
@VictorPiousbox The most precise and detailed source is the ECMAScript specification but it might be hard to read if you're not used to reading that sort of thing. Beyond that, I would just search for information using a search engine. –  Peter Olson Mar 28 '14 at 19:30

The .prototype property of a function is just there to set up inheritance on the new object when the function is invoked as a constructor.

When the new object is created, it gets its internal [[Prototype]] property set to the object that the function's .prototype property points to.

The object itself doesn't get a .prototype property. Its relationship to the object is completely internal.

That's why it works to do b.log(). When the JS engine sees that the b object itself has no log property, it tries to look it up on the objects internal [[Prototype]] object, where it successfully finds it.

To be clear, the [[Prototype]] property is not directly accessible. It's an internal property that is only indirectly mutable via other constructs provided by the JS engine.

share|improve this answer

Because prototype is a property of functions (actually, constructors), since it defines the properties/methods of objects of this class (those which were created from the constructor this prototype belongs). Take a look at this link

share|improve this answer

Before going through your code I want to make sure some concept of prototype that are required to understand your code behavior.

  1. [[prototype]] is a hidden property of a JavaScript object.This hidden property is nothing but a link to Object.prototype(If created by object literals).There is no standard way to access this [[prototype]] property.
  2. Functions in JavaScript are objects so they also have [[prototype]] property.Here, In case of function this hidden property is a link to Function.prototype.There is also no standard way to access this [[prototype]] property.
  3. Apart from this hidden link [[prototype]], Whenever a function object is created,a prototype property is created within it, which is separate from hidden [[prototype]] property.

Now coming to your code :

var x = function func(){}

When this line execute , a function object x is created with two links :

  • Function.prototype (not accessible),
  • x.prototype (accessible).

x.prototype.log = function() { console.log("1"); }

as we know now that x is a function object so x.prototype is accessible, so here you are able to include log method with it.

var b = new x();

b is an object but not function object .It has that hidden link [[prototype]] but It is not accessible. so when you try to access like b.prototype it gives undefined as a result.If you want to check the prototype of b than you can see (x.prototype).isPrototypeOf(b); it will return true. so you can say that hidden link is referenced to x.prototype.

Here are some facts about prototype :

  1. If object O is created with O = new func(){} than O[[prototype]] is func.prototype.
  2. If object O is created with O = {}than O[[prototype]] is Object.prototype.
  3. If object O is created with O = Object.create(obj) than O[[prototype]] is obj.
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.